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  3. Organic Electrochemical Transistor Channel Materials: Copolymerization Versus Physical Mixing of Glycolated and Alkoxylated Polymers
 

Organic Electrochemical Transistor Channel Materials: Copolymerization Versus Physical Mixing of Glycolated and Alkoxylated Polymers

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BORIS DOI
10.48620/85453
Date of Publication
February 7, 2025
Publication Type
Article
Division/Institute

University of Bern

King Abdullah Univers...

Hasselt University

Stanford University

DCBP Gruppe Prof. Ban...

Department of Chemist...

Author
Bynens, Lize
Zhang, Kaishuai
DCBP Gruppe Prof. Banerji
Cavassin, Priscila
Department of Chemistry, Biochemistry and Pharmaceutical Sciences (DCBP)
Goossens, Arwin
Vanderspikken, Jochen
Castillo, Tania C. H.
Tsokkou, Dimitra
DCBP Gruppe Prof. Banerji
Department of Chemistry, Biochemistry and Pharmaceutical Sciences (DCBP)
Marks, Adamorcid-logo
Magni, Arianna
Weaver, Karrieorcid-logo
Lutsen, Laurence
Inal, Sahika
Vandewal, Koen
Banerji, Natalieorcid-logo
DCBP Gruppe Prof. Banerji
Maes, Wouter
Subject(s)

500 - Science::540 - ...

Series
Advanced Functional Materials
ISSN or ISBN (if monograph)
1616-301X
1616-3028
Publisher
Wiley
Language
English
Publisher DOI
10.1002/adfm.202423913
Uncontrolled Keywords

copolymerization

glycol and alkoxy sid...

organic electrochemic...

polymer blends

semiconducting polyme...

Description
Organic electrochemical transistors (OECTs) feature a polymer channel capable of conducting both ions and electronic charges. The choice of the channel material is critical for OECT performance. Many efforts have focused on improving performance via the chemical tunability of conjugated polymers – through backbone, side chain, and molar mass engineering – leading to useful design principles for accumulation‐mode OECT materials. However, tuning the chemical structure of conjugated polymers often requires time‐consuming optimization of the synthesis route. Meanwhile, variations in molar mass, dispersity, structural defects, and metal content present challenges when attempting to analyze the detailed effects of structural modifications, as multiple performance‐determining factors are often (unintentionally) changed at the same time. Therefore, this study explores blended channel materials obtained by physically mixing glycolated and alkoxylated polymers in different ratios, and compares their OECT performance with the corresponding statistical copolymers. It is shown that mixing two well‐performing materials creates blends that enable rational tuning of the transistor properties without compromising on performance. Thus, channels based on blends of alkoxylated and glycolated polymers hold promise for OECT technology with tailored response, as only two materials are needed to achieve any desired side chain ratio, simplifying the optimization of OECT characteristics.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/205310
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File(s)
FileFile TypeFormatSizeLicensePublisher/Copright statementContent
Adv Funct Materials - 2025 - Bynens - Organic Electrochemical Transistor Channel Materials Copolymerization Versus_Published_Version.pdftextAdobe PDF2.84 MBpublished restricted
Organic Electrochemical Transistor Channel Materials Copolymerization versus Physical Mixing of Glycolated and Alkoxylated Polymers_AcceptedVersion.pdftextAdobe PDF1.75 MBaccepted embargo
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